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A flexible chatbot package with vector embeddings and prompt handling using Ollama and FAISS

Project description

mypackage_anshita

mypackage_anshita is a Python package built with Ollama models to provide:

  • Prompt-based text generation using models like gemma:2b, llama2, and others.
  • Vector-based document embedding and semantic search with FAISS.
  • Flexibility to use different models for generation and embeddings.

Installation

Install the package via PyPI:

pip install mypackage-anshita```




##Features

PromptRunner: Run prompts on various Ollama models.
DocumentEmbedder: Embed documents and perform vector search.
Integration with Ollama, FAISS, and NumPy.
Supports multiple Ollama models, including Gemma and LLaMA2.




##Usage Example

Generate Text
```from mypackage_anshita import PromptRunner

runner = PromptRunner(model='gemma:2b')
response = runner.run_prompt("What is the theory of relativity?")
print(response)
from mypackage_anshita import DocumentEmbedder

docs = [
    "Marie Curie won two Nobel Prizes.",
    "Einstein created the theory of relativity."
]

embedder = DocumentEmbedder()
embedder.embed_text(docs)

results = embedder.search("radioactivity")
print(results)```




##Author

Anshita Bhatnagar
Built during internship using LangChain, Ollama, FAISS, and Streamlit.




##License

MIT License

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